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固氮酶的结构与功能:生化遗传学视角

Nitrogenase structure and function: a biochemical-genetic perspective.

作者信息

Peters J W, Fisher K, Dean D R

机构信息

Department of Biochemistry and Anaerobic Microbiology, Virginia Polytechnic Institute and State University, Blacksburg 24061, USA.

出版信息

Annu Rev Microbiol. 1995;49:335-66. doi: 10.1146/annurev.mi.49.100195.002003.

Abstract

Biological nitrogen fixation is catalyzed by nitrogenase, an enzyme composed of two component proteins called the Fe protein and the MoFe protein. During catalysis, electrons are delivered one at a time from the Fe protein to the MoFe protein in a process involving component-protein association and dissociation and hydrolysis of at least two MgATP for each electron transfer. The Fe protein contains the sites for MgATP binding and hydrolysis, whereas the site for substrate binding and reduction is located on the MoFe protein. Among the important aspects of nitrogenase enzymology discussed here are (a) the structures of the metal centers that participate in electron transfer, (b) the organization of the metalloclusters within the polypeptides and their contributions to substrate binding and electron transfer, (c) the nature of the dynamic interactions between the two component proteins that lead to nucleotide hydrolysis and intermolecular electron transfer, (d) the mechanism by which the multiple electrons necessary for substrate reduction are distributed within the MoFe protein, (e) the nature of the intramolecular electron path within the MoFe protein, and (f) where and how substrate and various inhibitors become bound to the substrate-reduction site. This chapter summarizes biochemical-genetic strategies used to address these questions and discussed them in the context of the recently proposed three-dimensional models for both the Fe protein and MoFe protein from Azotobacter vinelandii.

摘要

生物固氮由固氮酶催化,固氮酶是一种由两种组分蛋白组成的酶,称为铁蛋白和钼铁蛋白。在催化过程中,电子一次一个地从铁蛋白传递到钼铁蛋白,这个过程涉及组分蛋白的缔合和解离,以及每次电子转移至少水解两个MgATP。铁蛋白含有MgATP结合和水解的位点,而底物结合和还原的位点位于钼铁蛋白上。本文讨论的固氮酶酶学的重要方面包括:(a)参与电子转移的金属中心的结构;(b)多肽内金属簇的组织及其对底物结合和电子转移的贡献;(c)导致核苷酸水解和分子间电子转移的两种组分蛋白之间动态相互作用的性质;(d)底物还原所需的多个电子在钼铁蛋白内分布的机制;(e)钼铁蛋白内分子内电子路径的性质;(f)底物和各种抑制剂在何处以及如何与底物还原位点结合。本章总结了用于解决这些问题的生化遗传学策略,并结合最近提出的来自棕色固氮菌的铁蛋白和钼铁蛋白的三维模型对这些问题进行了讨论。

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